• 제목/요약/키워드: Type C tank

검색결과 162건 처리시간 0.02초

냉동 정어리 조미육의 가공 및 저장중의 품질안정성 (Processing Conditions and Quality Stability of Frozen Seasoned Sardine Meat during Frozen Storage)

  • 이응호;오광수;안창범;이태훈;정영훈
    • 한국수산과학회지
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    • 제20권3호
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    • pp.191-201
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    • 1987
  • 정어리를 효율적으로 이용하기 위하여 각종 조리재료 및 식품가공용 중간소재로 이용할 수 있는 정어리냉동조미육의 가공조건을 구명하고 저장 중의 품질안정성에 대하여 검토하였다. 정어리냉동조미육을 가공하기 위하여 정어리육을 채육한 다음 육에 대하여 대두유의 유화커어드 $20.6\%$, 식염 $0.5\%$, 설탕 $2.0\%$, sodium bicarbonate $0.4\%$, polyphosphosphate $0.2\%$, MSG $0.1\%$ 및 양파가루 $0.3\%$, 마늘가루 $0.1\%$, 생강가루 $0.1\%$, 대두단백질 $3.0\%$, 그리고 저장 중의 지질산화를 방지 할 목적으로 sodium erythortate를 $0.1\%$ 첨가하여 잘 혼합한 후 $-35^{\circ}C$에서 동결시켜 $-20^{\circ}C$에서 저장하는 것이 좋았다. 정어리냉동조미육의 수분함량은 $67\~70\%$, 조단백질 $14\~16\%$, 조지방 $11\~12\%$였으며, 저장 중 제품의 pH는 다소 감소하고 휘발성염기질소는 약간 증가하였으며 생균수는 거의 변화가 없었다. 동결저장 중 과산화물값, 카르보닐값 및 TBA값을 측정한 결과 sodium erythorbate를 첨가한 제품(B)는 지질산화가 효율적으로 억제되었다. 제품의 정미성분 중 IMP는 저장 중 감소하였오 hypoxanthine은 증가하였다. 제품의 유리아미노산은 histidine과 glutamic acid가 대부분을 차지하였고 저장 중 약간 증가하였다. 정어리냉동조미육의 정미성분의 주체는 양적으로 보아 유리아미노산과 핵산관련물질이었고 저장중 총량은 거의 변화가 없었다. 제품의 주요구성지방산은 18:2, 18:1, 16:0 및 18:3 등이있고 저장 중 22:6의 감소율은 제품(B)에서 현저하게 억제되었다. 저장 중 제품 모두 유리드립과 가압드립은 증가하였고 염용성질소는 감소하였다. 텍스튜어는 경도와 질김성이 다소 증가하였으며 탄성과 응집력은 거의 변화가 없었다. 색조는 L값(명도)은 감소하고 b값(황색도)은 약간 증가하였으며 그 변화폭은 표면이 더욱 컸다. 관능검사 결과 제품 모두 저장 120일 동안 품질이 안정하게 유지되었으며 제품(B)의 품질안정성이 가장 우수하였다.

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배수개선공법개발에 관한 연구(I) -각종 지하배수용 암거재료의 배수성능- (Drainage Performance of Various Subsurface Drain Materials-)

  • 김철회;이근후;유시조;서원명
    • 한국농공학회지
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    • 제21권3호
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    • pp.104-120
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    • 1979
  • I. Title of the Study Studies on the Development of Improved Subsurface Drainage Methods. -Drainage Performance of Various Subsurface Drain Materials- II. Object of the Study Studies were carried out to select the drain material having the highest performance of drainage; And to develop the water budget model which is necessary for the planning of the drainage project and the establishment of water management standards in the water-logged paddy field. III. Content and Scope of the Study 1. The experiment was carried out in the laboratory by using a sand tank model. The drainage performance of various drain materials was compared evaluated. 2. A water budget model was established. Various parameters necessary for the model were investigated by analyzing existing data and measured data from the experimental field. The adaptability of the model was evaluated by comparing the estimated values to the field data. IV. Results and Recommendations 1. A corrugated tube enveloped with gravel or mat showed the highest drainage performance among the eight materials submmitted for the experiment. 2. The drainage performance of the long cement tile(50 cm long) was higher than that of the short cement tile(25 cm long). 3. Rice bran was superior to gravel in its' drain performance. 4. No difference was shown between a grave envelope and a P.V.C. wool mat in their performance of drainage. Continues investigation is needed to clarify the envelope performance. 5. All the results described above were obtained from the laboratory tests. A field test is recommended to confirm the results obtained. 6. As a water balance model of a given soil profile, the soil moisture depletion D, could be represented as follows; $$D=\Sigma\limit_{t=1}^{n}(Et-R_{\ell}-I+W_d)..........(17)$$ 7. Among the various empirical formulae for potential evapotranspiration, Penman's formular was best fit to the data observed with the evaporation pans in Jinju area. High degree of positive correlation between Penman;s predicted data and observed data was confirmed. The regression equation was Y=1.4X-22.86, where Y represents evaporation rate from small pan, in mm/100 days, and X represents potential evapotranspiration rate estimated by Penman's formular. The coefficient of correlation was r=0.94.** 8. To estimate evapotranspiration in the field, the consumptive use coefficient, Kc, was introduced. Kc was defined by the function of the characteristics of the crop soil as follows; $Kc=Kco{\cdot}Ka+Ks..........(20)$ where, Kco, Ka ans Ks represents the crop coefficient, the soil moisture coefficient, and the correction coefficient, respectively. The value of Kco and Ka was obtained from the Fig.16 and the Fig.17, respectively. And, if $Kco{\cdot}Ka{\geq}1.0,$ then Ks=0, otherwise, Ks value was estimated by using the relation; $Ks=1-Kco{\cdot}Ka$. 9. Into type formular, $r_t=\frac{R_{24}}{24}(\frac{b}{\sqrt{t}+a})$, was the best fit one to estimate the probable rainfall intensity when daily rainfall and rainfall durations are given as input data, The coefficient a and b are shown on the Table 16. 10. Japanese type formular, $I_t=\frac{b}{\sqrt{t}+a}$, was the best fit one to estimate the probable rainfall intensity when the rainfall duration only was given. The coefficient a and b are shown on the Table 17. 11. Effective rainfall, Re, was estimated by using following relationships; Re=D, if $R-D\geq}0$, otherwise, Re=R. 12. The difference of rainfall amount from soil moisture depletion was considered as the amount of drainage required. In this case, when Wd=O, Equation 24 was used, otherwise two to three days of lag time was considered and correction was made by use of storage coefficient. 13. To evaluate the model, measured data and estimated data was compared, and relative error was computed. 5.5 percent The relative error was 5.5 percent. 14. By considering the water budget in Jinju area, it was shown that the evaporation amount was greater than the rainfall during period of October to March in next year. This was the behind reasonning that the improvement of surface drainage system is needed in Jinju area.

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